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Simple question, simple code. This works:

$x = &$_SESSION['foo'];

This does not:

$x = (isset($_SESSION['foo']))?&$_SESSION['foo']:false;

It throws PHP Parse error: syntax error, unexpected '&'. Is it just not possible to pass by reference while using the conditional operator, and why not? Also happens if there's a space between the ? and &.

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Which PHP version? AFAIU, with PHP 5.3 you can use: $x = &($_SESSION['foo']) ?: false; –  Milan Babuškov Aug 2 '10 at 16:58
    
Sorry, I accidentally snipped it out; 5.2.8, sadly. –  Andrew Aug 2 '10 at 17:02
1  
@Milan That will trigger an E_NOTICE if the $_SESSION['foo'] element does not exist –  stillstanding Aug 2 '10 at 17:03
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5 Answers

up vote 12 down vote accepted

Simple answer: no. You'll have to take the long way around with if/else. It would also be rare and possibly confusing to have a reference one time, and a value the next. I would find this more intuitive, but then again I don't know your code of course:

if(!isset($_SESSION['foo'])) $_SESSION['foo'] = false;
$x = &$_SESSION['foo'];

As to why: no idea, probably it has to with at which point the parser considers something to be an copy of value or creation of a reference, which in this way cannot be determined at the point of parsing.

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As PHP documentation states: Note: Please note that the ternary operator is a statement, and that it doesn't evaluate to a variable, but to the result of a statement. This is important to know if you want to return a variable by reference. –  Tadeck May 19 '11 at 2:49
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The commentary on this bug report might shed some light on the issue:
http://bugs.php.net/bug.php?id=53117.

In essence, the two problems with trying to assign a reference from the result of a ternary operator are:

  1. Expressions can't yield references, and
  2. $x = (expression) is not a reference assignment, even if (expression) is a reference (which it isn't; see point 1).
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In the very simply case, this expression, which is illegal;

$c = condition ? &$a : &$b; // Syntax error

can be written like this:

$c = &${ condition ? 'a' : 'b' };

In your specific case, since you're not assigning by reference if the condition is false, a better option seems to be:

$x = isset($_SESSION['foo']) ? $x = &$_SESSION['foo'] : false;
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Let's try:

$x =& true?$y:$x;
Parse error: syntax error, unexpected '?', expecting T_PAAMAYIM_NEKUDOTAYIM in...
$x = true?&$y:&$x;
Parse error: syntax error, unexpected '&' in...

So, you see, it doesn't even parse. Wikken is probably right as to why it's not allowed.

You can get around this with a function:

function &ternaryRef($cond, &$iftrue, &$iffalse=NULL) {
    if ($cond)
        return $iftrue;
    else
        return $iffalse;
}

$x = 4;
$a = &ternaryRef(true, $x);
xdebug_debug_zval('a');
$b = &ternaryRef(false, $x);
xdebug_debug_zval('b');

gives:

a:

(refcount=2, is_ref=1),int 4
b:
(refcount=1, is_ref=0),null

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Unfortunately, you can't.

$x=false;
if (isset($_SESSION['foo']))
   $x=&$_SESSION['foo'];
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